Nova Patents
EP1516663A2

Steam reformer with burner

Abstract

A fuel processor comprising a diffusion burner assembly (300) adapted to produce a heated exhaust stream (66) for heating at least the hydrogen-producing region of the fuel processor. The diffusion burner assembly (300) is adapted to receive an air stream (74) and a combustible fuel stream (64) and comprises: a distribution region (284) adapted to mix the combustible fuel stream (276', 294', 294") and the air stream to form an oxygenated combustible fuel stream (274'); anda combustion region (92) adapted to receive the oxygenated combustible fuel stream; andat least one ignition region (88) adapted to initiate combustion of the oxygenated combustible fuel stream.

EP1516663A2, drawing sheet 1
Sheet 1 of 21

Term

Term ended

Projected expiry passed 11 April 2023, 3.5 years ago.

  1. Priority
  2. Filed
  3. Published
  4. Projected expiry
  5. Today

38 claims: 20 independent, 18 dependent

  1. 1
    A fuel processor, comprising:a hydrogen-producing region (19) adapted to receive a feed stream (16) and to produce a mixed gas stream (20) containing hydrogen gas and other gases therefrom;at least one separation region (24) adapted to receive at least a portion of the mixed gas stream (20) and to produce a hydrogen-rich stream (26) containing at least substantially pure hydrogen gas and at least one byproduct stream (28) containing at least a substantial portion of the other gases;a diffusion burner assembly (300) adapted to produce a heated exhaust stream (66) for heating at least the hydrogen-producing region of the fuel processor, wherein the diffusion bumer assembly (300) is adapted to receive an air stream (74) and a combustible fuel stream (64), wherein the diffusion burner assembly comprises: a distribution region (284) adapted to mix the combustible fuel stream (276', 294', 294") and the air stream to form an oxygenated combustible fuel stream (274');and a combustion region (92) adapted to receive the oxygenated combustible fuel stream;and at least one ignition region (88) adapted to initiate combustion of the oxygenated combustible fuel stream.
  2. 6
    The fuel processor of any of claims 3 to 5, wherein the diffusion structure includes a fuel distribution manifold (310) containing a plurality of fuel apertures (312) into which the combustible fuel stream is divided into the plurality of combustible fuel streams, and further wherein the plurality of fuel apertures (312) are in communication with a plurality of fuel tubes (314) having fuel outlets (316) adapted to deliver the plurality of fuel streams to the combustion region (92).
  3. 11
    The fuel processor of any of claims 8 to 10, wherein the combustion manifold (324) is adapted to maintain the air distribution chamber (322) at a pressure that is greater than the pressure within the combustion region (92).
  4. 12
    The fuel processor of any of claims 8 to 11, wherein the diffusion burner assembly is adapted to receive a combustible fuel stream in the form of a liquid combustible fuel stream, and further wherein the diffusion burner assembly includes a vaporization region (292) that is adapted to vaporize the liquid combustible fuel stream (82).
  5. 15
    The fuel processor of any preceding claim, wherein a stream that contains a carbon-containing feedstock is delivered to the fuel processor as a single stream (78) and thereafter divided into a stream that forms at least a portion of the feed stream (16) and a stream that forms at least a portion of the fuel stream (82).
  6. 16
    The fuel processor of any preceding claim, wherein the fuel stream (82) and the feed stream (16) both contain water and a carbon-containing feedstock.
  7. 18
    The fuel processor of any preceding claim, wherein the carbon-containing feedstock is miscible with water.
  8. 20
    The fuel processor of any preceding claim, wherein the fuel stream (82) and the feed stream (16) have the same composition.
  9. 21
    The fuel processor of any preceding claim, wherein at least one of the fuel stream (82) and the feed stream (16) further comprises at least one additional component.
  10. 22
    The fuel processor of any preceding claim, wherein the fuel processor is adapted to produce the mixed gas stream via a steam reforming reaction, wherein the hydrogen-producing region (19) includes at least one reforming region that contains a reforming catalyst (23), and further wherein the feed stream contains water and a carbon-containing feedstock.
  11. 25
    The fuel processor of any preceding claim, wherein the burner assembly is further adapted to receive a gaseous fuel stream (276).
  12. 26
    The fuel processor of any of claims 1 to 24, wherein the burner assembly is further adapted to receive at least a portion of the byproduct stream as a gaseous fuel stream.
  13. 27
    The fuel processor of any preceding claim, wherein the at least one separation region (24) includes at least one hydrogen-selective membrane (30).
  14. 30
    The fuel processor of any of claims 27 to 29 which further includes a heat shield (230) positioned generally between the at least one separation region and the burner assembly.
  15. 31
    The fuel processor of any of claims 1 to 26, wherein the at least one separation region (24) includes a pressure swing absorption system (38).
  16. 32
    The fuel processor of any preceding claim which comprises means for controlling the amount of heat produced by the burner assembly by controlling the rate at which the air stream is delivered to the burner assembly.
  17. 33
    The fuel processor of any preceding claim, wherein the fuel processor further includes an evaporator (256) adapted to vaporize any residual liquid in the heated exhaust stream from the burner assembly (80).
  18. 34
    The fuel processor of any preceding claim, wherein the fuel processor includes a plurality of reforming catalyst beds (222) that collectively define a central combustion region (92) into which the heated exhaust stream from the burner assembly is received from the burner assembly (80), and further wherein the fuel processor further includes a distribution manifold (224) that is adapted to receive the feed stream (78) and deliver the feed stream to the plurality of reforming catalyst beds (222), wherein the distribution manifold has an annular configuration with a central passage through which the heated exhaust stream from the burner assembly flows to the combustion region (92).
  19. 35
    The fuel processor of any preceding claim, wherein the fuel processor further includes an insulating shell (68) that defines a compartment in which at least the hydrogen-producing region (19) and the combustion region are positioned, and wherein the shell includes an exhaust opening through which the heated exhaust stream from the burner assembly (80) exits the shell, and further wherein the fuel processor includes an exhaust filter (216) adapted to filter the heated exhaust stream.
  20. 37
    A method of operating a fuel processor, the fuel processor comprising:a hydrogen-producing region (19) adapted to receive a feed stream (16) and to produce a mixed gas stream (20) containing hydrogen gas and other gases therefrom;at least one separation region (24) adapted to receive at least a portion of the mixed gas stream (20) and to produce a hydrogen-rich stream (26) containing at least substantially pure hydrogen gas and at least one byproduct stream (28) containing at least a substantial portion of the other gases;a diffusion burner assembly (300) adapted to produce a heated exhaust stream (66) for heating at least the hydrogen-producing region of the fuel processor, wherein the diffusion burner assembly (300) is adapted to receive an air stream (74) and a combustible fuel stream (64), wherein the diffusion burner assembly comprises (i) a distribution region (284) adapted to mix the combustible fuel stream (276', 294', 294") and the air stream to form an oxygenated combustible fuel stream (274'), (ii) a combustion region (92) adapted to receive the oxygenated combustible fuel stream and (iii) at least one ignition region (88) adapted to initiate combustion of the oxygenated combustible fuel stream;the method comprising: supplying a feed stream (16) to the hydrogen-producing region (19) whereby the region produces said mixed gas stream (20) which is received by the at least one separation region (24), whereby the at least one separation region (24) produces said hydrogen-rich stream (26) and said byproduct stream (28);and supplying an air stream (74) and a combustible fuel stream (64) to said burner assembly (300).
Independent claims20